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C. L. Hemme, H. Mouttaki, Y. J. Lee, G. Zhang, L. Goodwin, S. Lucas, A. Copeland, A. Lapidus, T. Glavina del Rio, H. Tice, E. Saunders, T. Brettin, J. C. Detter, C. S. Han, S. Pitluck, M. L. Land, L. J. Hauser, N. Kyrpides, N. Mikhailova, Z. He, L. Wu, J. D. Van Nostrand, B. Henrissat, Q. He, P. A. Lawson, R. S. Tanner, L. R. Lynd, J. Wiegel, M. W. Fields, A. P. Arkin, C. W. Schadt, B. S. Stevenson, M. J. McInerney, Y. Yang, H. Dong, D. Xing, N. Ren, A. Wang, R. L. Huhnke, J. R. Mielenz, S. Y. Ding, M. E. Himmel, S. Taghavi, D. van der Lelie, E. M. Rubin and J. Zhou, “Sequencing of Multiple Clostridial Genomes Related to Biomass Conversion and Biofuel Production,” Journal of Bacteriology, Vol. 192, No. 24, 2010, pp. 6494-6496. doi:10.1128/JB.01064-10
has been cited by the following article:
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TITLE:
Metabolic Engineering of Thermoanaerobacterium thermosaccharolyticum for Increased n-Butanol Production
AUTHORS:
Ashwini Bhandiwad, Anna Guseva, Lee Lynd
KEYWORDS:
Biofuels; n-Butanol; Thermophile; Metabolic Engineering
JOURNAL NAME:
Advances in Microbiology,
Vol.3 No.1,
March
27,
2013
ABSTRACT: Thermoanaerobacterium
thermosaccharolyticum shows promise as a host for
n-butanol production since it natively has the required genes involved in the
n-butanol biosynthetic pathway. Overexpression of the natively occurring bcs operon containing the genes thl, hbd, crt, bcd, etfA, and etfB responsible for the formation of butyryl CoA increased the n-butanol
production by 180% compared to the wild type from a n-butanol titer of 1.8 mM to
5.1 mM. The deletion of one of the six alcohol dehydrogenase genes
confirmed that it was the primary gene responsible for ethanol and n-butanol
production from acetyl CoA and butyryl CoA respectively.